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A computer vision-based framework for the synthesis and analysis of beamforming behavior in swarming intelligent systems

机译:基于计算机视觉的综合智能系统中波束成形行为的框架

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This work proposes a computer vision-based framework for analyzing and synthesizing the collaborative radiation behavior from swarming clusters of intelligent systems. Radiating sensor nodes with inertial measurement units and optical identification features represent the networked cluster of radiators. These create a set of object-distinguishable nodes on a reticulating platform capable of arbitrary spatial distributions. Node discovery and tracking algorithms based on open-source computer vision libraries use image and depth-of-field information from multi-spectral cameras. These locate nodes and their volumetric distribution within the cluster. An automated system then derives the weighted phases for collaborative beamforming from the resulting nodal distribution. Measured and simulated radiation patterns are gathered and compared to demonstrate the capability and accuracy of the proposed framework and to explore its usability in swarm applications.
机译:这项工作提出了一个基于计算机视觉的框架,用于分析和综合来自智能系统集群的协作辐射行为。具有惯性测量单元和光学识别功能的辐射传感器节点代表了辐射器的网络集群。这些在能够任意空间分布的网状平台上创建了一组可区分对象的节点。基于开源计算机视觉库的节点发现和跟踪算法使用来自多光谱相机的图像和景深信息。这些在群集中定位节点及其体积分布。然后,自动系统从所得的节点分布中得出用于协作波束形成的加权相位。收集并比较了测量和模拟的辐射图,以证明所提出框架的功能和准确性,并探索其在群体应用中的可用性。

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